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Structural origins of pH-dependent chemical shifts in the B1 domain of protein G.

机译:pH依赖的蛋白质G的B1域中化学位移的结构起源。

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We report chemical shifts for H(N), N, and C' nuclei in the His-tagged B1 domain of protein G (GB1) over a range of pH values from pH 2.0 to 9.0, which fit well to standard pH-dependent equations. We also report a 1.2 A resolution crystal structure of GB1 at pH 3.0. Comparison of this crystal structure with published crystal structures at higher pHs provides details of the structural changes in GB1 associated with protonation of the carboxylate groups, in particular a conformational change in the C-terminus of the protein at low pH. An additional change described recently is not seen in the crystal structure because of crystal contacts. We show that the pH-dependent changes in chemical shifts can be almost entirely understood based on structural changes, thereby providing insight into the relationship between structure and chemical shift. In particular, we describe through-bond effects extending up to five bonds, affecting N and C' but not H(N); through-space effects of carboxylates, which fit well to a simple electric field model; and effects due to conformational change, which have a similar magnitude to many of the direct effects. Finally, we discuss cooperative effects, demonstrating a lack of cooperative unfolding in the helix, and the existence of a beta-sheet "iceberg" extending over three of the four strands. This study therefore extends the application of chemical shifts to understanding protein structure.
机译:我们报告了在pH值从2.0到9.0的范围内,蛋白G(GB1)的His标记B1域中H(N),N和C'核的化学位移,这非常适合标准的pH依赖方程。我们还报告了pH 3.0时GB1的1.2 A分辨率晶体结构。将该晶体结构与在较高pH下公开的晶体结构进行比较,可提供与羧酸根基团质子化相关的GB1结构变化的详细信息,尤其是在低pH下蛋白质C端的构象变化。由于晶体接触,在晶体结构中看不到最近描述的另一变化。我们显示基于结构变化几乎可以完全理解pH依赖的化学位移变化,从而提供对结构与化学位移之间关系的了解。特别是,我们描述了通过键合效应扩展到五个键,影响N和C',但不影响H(N)。羧酸盐的贯穿空间效应,非常适合简单的电场模型;以及由于构象变化而产生的效应,其幅度与许多直接效应相似。最后,我们讨论了协同效应,这表明在螺旋中缺乏协同展开,并且存在一个β折叠的“冰山”延伸到四链中的三链。因此,这项研究将化学位移的应用扩展到了解蛋白质结构。

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